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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Carbon buffered-transition metal oxide nanoparticle-graphene hybrid nanosheets as high-performance anode materials for lithium ion batteries
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Carbon buffered-transition metal oxide nanoparticle-graphene hybrid nanosheets as high-performance anode materials for lithium ion batteries

机译:碳缓冲过渡金属氧化物纳米粒子-石墨烯杂化纳米片作为锂离子电池的高性能负极材料

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In this article, we report a simple and general method for the synthesis of carbon buffered-metal oxide nanoparticle (NP)-graphene hybrid 2D nanosheets, which include C-SnO2-rGO and C-Fe2O3-rGO nanosheets. For the preparation of these anodes, tannic acid (TA), a kind of polyphenol extracted from plants, was used as a dispersing agent to introduce a metal precursor on the surface of rGO, and the metal precursor was subsequently converted to the corresponding metal oxide NPs by thermal annealing in a vacuum. During the thermal annealing process, TA was decomposed to form carbon materials, which acted as a buffering matrix to effectively suppress the aggregation and pulverization of the active NPs during the electrochemical performances. It is found that the as-prepared C-SnO2-rG0 and C-Fe2O3-rGO nanosheets both exhibited high reversible capacity and rate capability. After 100 discharge/charge cycles, the C-SnO2-rGO nanosheet delivered the reversible capacity of 633.2 mA h g~(-1) at a current density of 200 mA g~(-1) with extremely low capacity fading (0.32 mAhg~(-1) per cycle), and it can deliver discharge capacities of 641.3, 526.5, 452.7, 408.1 and 379.5 mA h g~(-1) in the 10th cycle at current densities of 200, 400, 800,1200 and 1600 mA g~(-1), respectively. Upon return to a cycling rate of 200 mA g~(-1) the C-SnO2-rGO can maintain a specific capacity of 607.0 mA h g~(-1) even after 35 cycles. As for the C-Fe2O3-rGO nanosheet, it can deliver 504.1 mA h g~(-1) at a current density of 500 mA g~(-1) after 100 cycles, and the corresponding discharge capacities in the 10~(th) cycle at current densities of 1000, 1500 and 2000 mA g~(-1) are 365.9, 319.0 and 288.6 mA h g~(-1) respectively.
机译:在本文中,我们报告了一种简单而通用的碳缓冲金属氧化物纳米颗粒(NP)-石墨烯杂化二维纳米片的合成方法,其中包括C-SnO2-rGO和C-Fe2O3-rGO纳米片。为了制备这些阳极,使用鞣花酸(TA)(一种从植物中提取的多酚)作为分散剂,将金属前体引入rGO的表面,然后将金属前体转化为相应的金属氧化物。 NP通过在真空中进行热退火来实现。在热退火过程中,TA分解形成碳材料,碳材料充当缓冲基质,可在电化学性能中有效抑制活性NP的聚集和粉碎。发现所制备的C-SnO2-rG0和C-Fe2O3-rGO纳米片均显示出高的可逆容量和速率能力。经过100个放电/充电循环后,C-SnO2-rGO纳米片在200 mA g〜(-1)的电流密度下可传递633.2 mA hg〜(-1)的可逆容量,而容量衰减极低(0.32 mAhg〜(-1) -1)/循环),并且在第10个循环中以200、400、800、1200和1600 mA g〜的电流密度可以提供641.3、526.5、452.7、408.1和379.5 mA hg〜(-1)的放电容量(-1)。恢复到200 mA g〜(-1)的循环速率后,即使经过35个循环,C-SnO2-rGO仍可保持607.0 mA h g〜(-1)的比容量。对于C-Fe2O3-rGO纳米片,经过100个循环后,可以以500 mA g〜(-1)的电流密度输送504.1 mA hg〜(-1),相应的放电容量在10〜(th)电流密度为1000、1500和2000 mA g〜(-1)时的周期分别为365.9、319.0和288.6 mA h ~~(-1)。

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